US9585315B2ActiveUtilityA1

System and method for solar greenhouse aquaponics and black soldier fly composter and auto fish feeder

Individually held — no corporate assignee on recordPriority: Feb 28, 2014Filed: Feb 27, 2015Granted: Mar 7, 2017
Est. expiryFeb 28, 2034(~7.6 yrs left)· nominal 20-yr term from priority
A01K 61/02Y02P60/642A01G 9/14A01K 63/065A01G 31/02A01K 63/045A01K 63/042Y02P60/216A01K 67/30A01K 61/80Y02P60/60Y02A40/25Y02P60/21A01K 63/04Y02A40/81
75
PatentIndex Score
2
Cited by
17
References
6
Claims

Abstract

A system, method, and computer program product for an aquaponics, and greenhouse system, including a solar greenhouse insulated on north, east and west sides and with glazing on a south side at an angle to maximize winter sunlight, and housing a fish tank; and a plurality of grow beds coupled to the fish tank. The grow beds each including a geyzer pump powered by an air pump to pump water from the fish tank to the grow bed and aerate water of the fish tank, and a bell siphon to drain the water from the grow bed back into the fish tank.

Claims

exact text as granted — not AI-modified
What is claimed is: 
     
       1. An aquaponics, and greenhouse system comprising:
 a solar greenhouse insulated on north, east and west sides and with glazing on a south side at an angle to maximize winter sunlight, and housing: 
 a fish tank housed within said solar greenhouse; 
 a plurality of grow beds coupled to the fish tank and also housed within said solar greenhouse; 
 each one of the plurality of grow beds comprises a geyser pump internal to the fish tank and powered by an external air pump to pump water from the fish tank to the grow bed and aerate water of the fish tank, and a bell siphon external to the grow bed and configured to drain the water from the grow bed back into the fish tank, 
 each geyser pump comprises a geyser pump housing with an open bottom and closed top, with an air inlet provided in the geyser pump housing coupled to the air pump, and a geyser pump standpipe extending through the closed top of the geyser pump housing to an inside of the geyser pump housing and coupled to a top of the grow bed to pump the water from the fish tank to the top of the grow bed and aerate the water of the fish tank, and 
 each bell siphon comprises a bell siphon housing with an open end and closed top, with the open end of the bell siphon housing coupled to a bottom of the grow bed, and a bell siphon standpipe extending within the bell siphon housing and coupled to the fish tank to drain the water from the grow bed back into the fish tank. 
 
     
     
       2. The system of  claim 1 , further comprising:
 a rocket mass heater inside the greenhouse to heat the greenhouse and fish tank water, and comprising an L-shaped mass with an interior metal column with metal coils wrapped around the metal column to heat water from the fish tank circulating therethrough. 
 
     
     
       3. The system of  claim 1 , further comprising:
 a rain water collection system for the greenhouse to capture rain water from the greenhouse and to heat fish tank water, and comprising a rain water container inside the greenhouse to hold the rain water and coupled to the fish tank, and a rain gutter made of a reflective material provided around a roof of the greenhouse and coupled to the rain water container to capture rain water, and a water pump coupled to the rain water container to recirculate the rain from the rain water container to the reflective rain gutter to heat fish tank water. 
 
     
     
       4. The system of  claim 1 , further comprising:
 a hard filter coupled to the fish tank to filter water from the fish tank, and providing mechanical filtration, biological filtration, chemical filtration, and/or UV light sanitation; and 
 a duckweed auto fish feeder having an output coupled to the fish tank and with duckweed growing on a top water surface of the hard filter provided to the fish tank. 
 
     
     
       5. The system of  claim 1 , further comprising:
 a black soldier fly (BSF) composting and auto fish feeder for converting organic matter into BSF larvae for fish feed, and comprising a BSF container having an internal ramp, and an external ramp, with the internal ramp disposed within the BSF container, and with the external ramp coupled to the internal ramp and disposed over the fish tank so that the BSF larvae can crawl up the internal ramp and drop off from the external ramp into the fish tank as the fish feed. 
 
     
     
       6. The system of  claim 1 , further comprising:
 a spectral analyzer based sensor having a gas probe disposed within the greenhouse to measure air parameters of the greenhouse including temperature, humidity, O2, and CO2 levels in the greenhouse, and a water probe disposed within the fish tank to measure water parameters of the fish tank water including dissolved oxygen, PH, nitrate, nitrite, ammonia, and electrical conductivity (EC) levels of the fish tank water, and 
 a computer coupled to the spectral analyzer based sensor and configured to control one or more of the air and water parameters based on the measured air and water parameters levels.

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